Analysis of Thermal Radiation and Ohmic Heating Effects on the Entropy Generation of MHD Williamson Fluid through an Inclined Channel

Q3 Engineering
A. Opanuga, G. Sobamowo, H. Okagbue, P. Ogunniyi
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引用次数: 0

Abstract

In this present work, the heat irreversibility analysis of thermal radiation, Ohmic heating, and angle of inclination on Williamson fluid is presented. The developed equations are converted to dimensionless forms, and Homotopy perturbation method (HPM) is used to solve the resulting coupled ordinary differential equations. The heat irreversibility analysis is achieved by substituting the obtained results into entropy generation and Bejan number expressions. The HPM solution for the velocity profile is validated by comparing it with a previously published study in some limited cases, and an excellent agreement is established. Fluid motion is accelerated by the increasing values of thermal radiation parameter, whereas the magnetic parameter and Reynolds number reduce it. Furthermore, except for the Weissenberg and Prandtl numbers, all of the flow parameters examined enhance fluid temperature. In addition, entropy generation is enhanced at the channel's upper wall for all parameters except magnetic field parameter.
热辐射和欧姆加热对MHD Williamson流体通过倾斜通道熵产生的影响分析
本文对威廉姆森流体的热辐射、欧姆加热和倾角进行了热不可逆性分析。将所建立的方程转换为无量纲形式,并采用同伦摄动法求解得到的耦合常微分方程。将所得结果代入熵生成和贝让数表达式,得到热不可逆性分析。在一些有限的情况下,通过将速度剖面的HPM解与先前发表的研究结果进行比较,验证了HPM解的正确性,并建立了良好的一致性。热辐射参数的增大使流体运动加速,磁参数和雷诺数的增大使流体运动减慢。此外,除了Weissenberg数和Prandtl数外,所有的流动参数都提高了流体温度。此外,除了磁场参数外,所有参数都增强了通道上壁的熵产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
WSEAS Transactions on Fluid Mechanics
WSEAS Transactions on Fluid Mechanics Engineering-Computational Mechanics
CiteScore
1.50
自引率
0.00%
发文量
20
期刊介绍: WSEAS Transactions on Fluid Mechanics publishes original research papers relating to the studying of fluids. We aim to bring important work to a wide international audience and therefore only publish papers of exceptional scientific value that advance our understanding of this particular area. The research presented must transcend the limits of case studies, while both experimental and theoretical studies are accepted. It is a multi-disciplinary journal and therefore its content mirrors the diverse interests and approaches of scholars involved with multiphase flow, boundary layer flow, material properties, wave modelling and related areas. We also welcome scholarly contributions from officials with government agencies, international agencies, and non-governmental organizations.
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